State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, 122 Luoshi Road, Wuhan 430070, P. R. China.
Key Laboratory of Separation Science for Analytical Chemistry, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, P. R. China.
Sci Rep. 2017 Jan 13;7:40913. doi: 10.1038/srep40913.
Biological systems that utilize multiple weak non-covalent interactions and hierarchical assemblies to achieve various bio-functions bring much inspiration for the design of artificial biomaterials. However, it remains a big challenge to correlate underlying biomolecule interactions with macroscopic level of materials, for example, recognizing such weak interaction, further transforming it into regulating material's macroscopic property and contributing to some new bio-applications. Here we designed a novel smart polymer based on polyacrylamide (PAM) grafted with lactose units (PAM-g-lactose), and reported carbohydrate-carbohydrate interaction (CCI)-promoted macroscopic properties switching on this smart polymer surface. Detailed investigations indicated that the binding of sialic acid molecules with the grafted lactose units via the CCIs induced conformational transformation of the polymer chains, further resulted in remarkable and reversible switching in surface topography, wettability and stiffness. With these excellent recognition and response capacities towards sialic acid, the PAM-g-lactose further facilitated good selectivity, strong anti-interference and high adsorption capacity in the capture of sialylated glycopeptides (important biomarkers for cancers). This work provides some enlightenment for the development of biointerface materials with tunable property, as well as high-performance glycopeptide enrichment materials.
生物体系利用多种弱非共价相互作用和层次组装来实现各种生物功能,为人工生物材料的设计带来了很多启示。然而,将潜在的生物分子相互作用与宏观水平的材料相关联仍然是一个巨大的挑战,例如,识别这种弱相互作用,进一步将其转化为调节材料的宏观性质,并有助于一些新的生物应用。在这里,我们设计了一种基于聚丙烯酰胺(PAM)接枝乳糖单元(PAM-g-乳糖)的新型智能聚合物,并报道了碳水化合物-碳水化合物相互作用(CCI)促进这种智能聚合物表面宏观性质转换。详细的研究表明,唾液酸分子通过 CCI 与接枝的乳糖单元结合诱导聚合物链的构象转变,进一步导致表面形貌、润湿性和刚度的显著和可逆转换。由于对唾液酸具有优异的识别和响应能力,PAM-g-乳糖在捕获唾液酸化糖肽(癌症的重要生物标志物)方面具有良好的选择性、强抗干扰性和高吸附能力。这项工作为开发具有可调性质的生物界面材料以及高性能糖肽富集材料提供了一些启示。